Pantazidis Christos, Wang Chang-Lin, Tomović Željko
Polymer Performance Materials Group, Department of Chemical Engineering and Chemistry and Institute for Complex Molecular Systems (ICMS), Eindhoven University of Technology, Eindhoven, MB 5600, The Netherlands.
Small. 2024 Nov;20(47):e2403931. doi: 10.1002/smll.202403931. Epub 2024 Aug 11.
Organic aerogels are emerging as promising materials due to their versatile properties, rendering them excellent candidates for a variety of applications in the fields of thermal insulation, energy storage, pharmaceuticals, chemical adsorption, and catalysis. However, current aerogel designs rely on cross-linked polymer networks, which lack efficient end-of-use solutions, thereby hindering their overall sustainability. In this study, a facile synthesis of organic aerogels with a unique combination of imine and cyanurate moieties is presented, resulting in high-performance, lightweight insulating materials. The aerogels' structure, ensures mechanical robustness, thermal resistance, and hydrophobicity without additional treatments, crucial for long-term performance. Additionally, in response to the currently unsustainable use of cross-linked polymer materials, the molecular design offers diverse avenues of chemical recycling. These include full depolymerization back into the original monomers, partial network fragmentation producing soluble oligomers that can be promptly employed to fabricate new aerogels, and upcycling of aerogel waste into useful building blocks. This work pioneers a novel approach to material design, emphasizing recyclability as a core feature while maintaining high-performance excellence.
有机气凝胶因其多样的性能而成为有前景的材料,使其成为热绝缘、能量存储、制药、化学吸附和催化等领域各种应用的理想候选材料。然而,目前的气凝胶设计依赖于交联聚合物网络,缺乏有效的使用后解决方案,从而阻碍了它们的整体可持续性。在本研究中,提出了一种简便的合成方法,用于制备具有独特亚胺和氰尿酸酯部分组合的有机气凝胶,从而得到高性能、轻质的绝缘材料。气凝胶的结构确保了机械强度、耐热性和疏水性,无需额外处理,这对长期性能至关重要。此外,针对目前交联聚合物材料不可持续使用的问题,分子设计提供了多种化学回收途径。这些途径包括完全解聚回原始单体、部分网络碎片化产生可立即用于制造新气凝胶的可溶性低聚物,以及将气凝胶废料升级循环为有用的构建块。这项工作开创了一种新颖的材料设计方法,强调可回收性作为核心特征,同时保持卓越的高性能。